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Effect of Hydrogen Nutrition Denitrifying Bacteria on Nanoscale Zero-Valent Iron Settlement

机译:氢营养反硝化细菌对纳米级零价铁沉降的影响

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Nanoscale zero-valent iron (nZVI) particles has an extremely small size and can be suspended in groundwater for long periods of time to remove contaminants. However, more and more experimental results show that the migration performance of nZVI particles in groundwater is far lower than expected, and it is difficult to meet the actual needs of in-situ remediation. In order to study the effect of hydrogenotrophic denitrifying bacteria on Nano-iron, the sedimentation test was used as the main research method to discuss the demonstration. The experimental results showed that within the pure water system and in the culture solution system, the sedimentation rate of Nano-iron was decreased after adding bacteria. As the amount of bacteria in the system increases, the sedimentation rate of Nano-iron tends to decrease. When the amount of bacteria reaches a certain amount, it will have a saturating effect on the sedimentation effect of Nano-iron. XRD spectra showed that Fe3O4 and Fe2O3 were the main iron oxides in the initial oxidation, while Fe2O3, Fe3O4 and Fe2O3 were obtained in the final time of sedimentation. Amorphous 8-FeOOH (corrosion product of zero-valent iron in pure water) replaces Fe2O3 and Fe3O4 as major corrosion products after the addition of bacterial reaction.
机译:纳米级零价铁(NZVI)颗粒具有极小的尺寸,可以长时间悬挂在地下水中以去除污染物。然而,越来越多的实验结果表明,地下水中NZVI颗粒的迁移性能远低于预期,并且难以满足原位修复的实际需求。为了研究氢脱硫细菌对纳米铁的影响,沉淀试验用作讨论示范的主要研究方法。实验结果表明,在纯水系统和培养溶液体系中,添加细菌后,纳米铁的沉降率降低。随着系统中细菌的量增加,纳米铁的沉降速率趋于降低。当细菌量达到一定量时,它将对纳米铁的沉降效果产生饱和作用。 XRD光谱显示Fe3O4和Fe 2 O 3在初始氧化中是主要的氧化铁,而在沉淀的最后一次获得Fe 2 O 3,Fe 3 O 4和Fe 2 O 3。无定形8-FeOOH(纯水中零价铁的腐蚀产物)在添加细菌反应后,取代Fe2O3和Fe3O4作为主要腐蚀产品。

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